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In-flight performance of the Soft X-ray Spectrometer detector system on Astro-H

机译:软X射线光谱仪探测器系统在Astro-H上的飞行性能

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The SXS instrument was launched aboard the Astro-H observatory on February 17, 2016. The SXS spectrometer is based on a high sensitivity x-ray calorimeter detector system that has been successfully deployed in many ground and sub-orbital spectrometers. The instrument was to provide essential diagnostics for nearly every class of x-ray emitting objects from the atmosphere of Jupiter to the outskirts of galaxy clusters, without degradation for spatially extended objects. The SXS detector system consisted of a 36-pixel cryogenic microcalorimeter array operated at a heat sink temperature of 50 mK. In pre-flight testing, the detector system demonstrated a resolving power of better than 1300 at 6 keV with a simultaneous band-pass from below 0.3 keV to above 12 keV with a timing precision better than 100 μs. In addition, a solid-state anti-coincidence detector was placed directly behind the detector array for background suppression. The detector error budget included the measured interference from the SXS cooling system and the spacecraft. Additional margin for on-orbit gain-stability, and on-orbit spacecraft interference were also included predicting an on-orbit performance that meets or exceeds the 7 eV FWHM at 6 keV requirement. The actual on-orbit spectral resolution was better than 5 eV FWHM at 6 keV, easily satisfying the instrument requirement. Here we discuss the actual on-orbit performance of the SXS detector system and compare this to performance in pre-flight testing and the on-orbit predictions. We will also discuss the on-orbit gain stability, additional on-orbit interference, and measurements of the on-orbit background.
机译:SXS仪器于2016年2月17日在Astro-H天文台上发射。SXS光谱仪基于高灵敏度X射线量热计检测器系统,该系统已成功部署在许多地面和亚轨道光谱仪中。该仪器将为从木星大气到星系团郊区的几乎所有类别的X射线发射物体提供必要的诊断,而不会降低空间扩展物体的质量。 SXS检测器系统由一个36像素的低温微热量计阵列组成,该阵列在50 mK的散热器温度下运行。在飞行前测试中,检测器系统在6 keV时显示了优于1300的分辨能力,同时从0.3 keV以下到12 keV的同时带通,定时精度优于100μs。另外,将固态反巧合检测器直接放置在检测器阵列的后面,以进行背景抑制。探测器误差预算包括来自SXS冷却系统和航天器的测量干扰。还包括预测轨道增益在6 keV时达到或超过7 eV FWHM的在轨性能的额外余量,以提高在轨增益的稳定性和在轨航天器的干扰。实际在轨光谱分辨率在6 keV时优于5 eV FWHM,可轻松满足仪器要求。在这里,我们讨论SXS探测器系统的实际在轨性能,并将其与飞行前测试和在轨预测的性能进行比较。我们还将讨论在轨增益稳定性,附加在轨干扰以及在轨背景的测量。

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